A system includes a sampling module, a counter module, and a frequency characteristic module. The sampling module samples radio frequency (rf) signals on a first channel for a first predetermined period and a second predetermined period that is subsequent to the first predetermined period. The counter module increments first and second counts when the samples collected during the first and second predetermined periods reverse polarity, respectively. The frequency characteristic module determines a frequency of the rf signal based on at least one of the first and the second counts and determines frequency variation of the rf signal based on the first and second counts.
|
18. A method comprising:
sampling radio frequency (rf) signals on a first channel f or a first predetermined period, a second predetermined period that is subsequent to said first predetermined period, and a third predetermined period that is subsequent to said second predetermined period;
incrementing first, second, and third counts when samples collected during said first, second, and third predetermined periods reverse polarity, respectively;
determining a first difference between said first and second counts, a second difference between said second and third counts, and a third difference between said first and second differences;
determining a frequency of said rf signal based on at least one of said first and said second counts;
determining frequency variation of said rf signal based on said first and second counts; and
determining that said rf signal is chirp radar when said third difference is less than a predetermined threshold.
1. A system comprising:
a sampling module that samples radio frequency (rf) signals on a first channel for a first predetermined period, a second predetermined period that is subsequent to said first predetermined period, and a third predetermined period that is subsequent to said second predetermined period;
a counter module that increments first, second, and third counts when samples collected during said first, second, and third predetermined periods reverse polarity, respectively;
a derivative module that determines a first difference between said first and second counts, a second difference between said second and third counts, and a third difference between said first and second differences; and
a frequency characteristic module that determines a frequency of said rf signal based on at least one of said first and said second counts, that determines frequency variation of said rf signal based on said first and second counts, and that determines that said rf signal is chirp radar when said third difference is less than a predetermined threshold.
2. The system of
3. The system of
4. The system of
5. The system of
7. The system of
8. The system of
9. The system of
10. The system of
11. The system of
12. The system of
19. The method of
20. The method of
21. The method of
22. The method of
24. The method of
25. The method of
26. The method of
27. The method of
28. The method of
29. The method of
|
This application claims the benefit of U.S. Provisional Application No. 60/749,222, filed on Dec. 9, 2005. The disclosure of the above application is incorporated herein by reference in its entirety.
The present disclosure relates to wireless networks, and more particularly to a system and method for detecting and measuring frequency variations in wireless signals.
The background description provided herein is for the purpose of generally presenting the context of the disclosure. Work of the presently named inventors, to the extent it is described in this background section, as well as aspects of the description which may not otherwise qualify as prior art at the time of filing, are neither expressly nor impliedly admitted as prior art against the present disclosure.
The I.E.E.E. has defined several different standards for configuring wireless networks and devices. For example, 802.11, 802.11(a), 802.11(b), 802.11(g), 802.11(h), 802.11(n), 802.16, and 802.20. According to these standards, wireless network devices may be operated in either an infrastructure mode or an ad-hoc mode.
In the infrastructure mode, the wireless network devices or client stations communicate with each other through an access point. In the ad-hoc mode, the wireless network devices communicate directly with each other and do not employ an access point. The term client station or mobile station may not necessarily mean that a wireless network device is actually mobile. For example, a desktop computer that is not mobile may incorporate a wireless network device and operate as a mobile station or client station.
Referring now to
Referring now to
To minimize radio frequency (RF) interference, some wireless networks may operate in a 5 GHz band. However, regulatory requirements governing the use of the 5 GHz band vary from country to country. Some countries utilize the 5 GHz band for military radar communications. Therefore, wireless networks operating in the 5 GHz band generally employ dynamic frequency selection (DFS) to avoid interference with radar communications. A network device generally employs DFS to a different channel of the 5 GHz band to avoid interfering with radar communications.
In infrastructure mode, the AP 14 transmits beacons to inform the client stations 12 that the AP uses DFS. When the client stations 12 detect radar on a channel, the client stations 12 notify the AP 14. Based on this information, the AP 14 uses DFS to select the best channel for network communications that will not interfere with radar.
In ad-hoc mode, one client station may be designated as a DFS owner. The DFS owner is responsible for collecting reports from the other client stations. If any station in the ad-hoc network detects radar, the DFS owner uses DFS to select the best channel for network communications that does not interfere with radar. For example, if station 26-1 is the DFS owner, it will be responsible for collecting reports from stations 26-2 and 26-3. If any station 26-1, 26-2, and 26-3 detects radar, station 26-1 will used DFS to select the best channel and notify stations 26-2 and 26-3 to switch to that channel.
A system comprises a sampling module, a counter module, and a frequency characteristic module. The sampling module samples radio frequency (RF) signals on a first channel for a first predetermined period and a second predetermined period that is subsequent to the first predetermined period. The counter module increments first and second counts when the samples collected during the first and second predetermined periods reverse polarity, respectively. The frequency characteristic module determines a frequency of the RF signal based on at least one of the first and the second counts and determines frequency variation of the RF signal based on the first and second counts. At least one of the first and second counts is equal to the frequency.
In another feature, the frequency characteristic module compares the first and second counts to determine the frequency variation. The frequency characteristic module determines that the RF signal is tone radar when the first and second counts are approximately equal.
In another feature, the sampling module samples the RF signals for a third predetermined period that is subsequent to the second predetermined period and wherein the counter module increments a third count when the samples collected during the third predetermined period reverse polarity.
In another feature, the system further comprises a derivative module that determines a first difference between the first and second counts and a second difference between the second and third counts. The derivative module determines a third difference between the first and second differences. The derivative module determines the first and second differences when the first, second, and third counts are greater than a predetermined threshold.
In another feature, the frequency characteristic module determines that the RF signal is chirp radar when the third difference is less than a predetermined threshold. The predetermined threshold is approximately zero.
In another feature, the frequency characteristic module determines that the RF signal is chirp radar when the third difference is approximately zero.
In another feature, the system further comprises a radar module that determines whether the RF signal is one of chirp radar and tone radar based on the frequency variation. The radar module determines that the RF signal is chirp radar when the frequency variation is linear. The radar module determines that the RF signal is tone radar when the frequency variation is approximately zero.
In another feature, the system further comprises a dynamic frequency selection (DFS) module that communicates with the radar module and that selects a second channel having a different frequency than the first channel when the radar module determines that the RF signal is one of chirp radar and tone radar.
In another feature, at least one of the samples is disregarded and excluded from the first and second counts when an absolute value of the at least one of the samples is less than a predetermined threshold.
In another feature, the predetermined threshold is approximately 0.1.
In another feature, the first and second periods are adjacent.
In another feature, the first, second, and third periods are adjacent.
In another feature, a wireless network device comprises the system.
In another feature, a radar detection device comprises the system.
In still other features, a method comprises sampling radio frequency (RF) signals on a first channel for a first predetermined period and a second predetermined period that is subsequent to the first predetermined period, incrementing first and second counts when the samples collected during the first and second predetermined periods reverse polarity, respectively, determining a frequency of the RF signal based on at least one of the first and the second counts, and determining frequency variation of the RF signal based on the first and second counts. At least one of the first and second counts is equal to the frequency.
In another feature, the method further comprises comparing the first and second counts to determine the frequency variation. The method further comprises determining that the RF signal is tone radar when the first and second counts are approximately equal.
In another feature, the method further comprises sampling the RF signals for a third predetermined period that is subsequent to the second predetermined period and incrementing a third count when the samples collected during the third predetermined period reverse polarity.
In another feature, the method further comprises determining a first difference between the first and second counts and a second difference between the second and third counts. The method further comprises determining a third difference between the first and second differences.
In another feature, the method further comprises determining the first and second differences when the first, second, and third counts are greater than a predetermined threshold.
In another feature, the method further comprises determining that the RF signal is chirp radar when the third difference is less than a predetermined threshold. The predetermined threshold is approximately zero.
In another feature, the method further comprises determining that the RF signal is chirp radar when the third difference is approximately zero.
In another feature, the method further comprises determining whether the RF signal is one of chirp radar and tone radar based on the frequency variation. The method further comprises determining that the RF signal is chirp radar when the frequency variation is linear. The method further comprises determining that the RF signal is tone radar when the frequency variation is approximately zero.
In another feature, the method further comprises selecting a second channel having a different frequency than the first channel when the RF signal is one of chirp radar and tone radar.
In another feature, the method further comprises disregarding and excluding at least one of the samples from the first and second counts when an absolute value of the at least one of the samples is less than a predetermined threshold.
In another feature, the predetermined threshold is approximately 0.1.
In another feature, the first and second periods are adjacent.
In another feature, the first, second, and third periods are adjacent.
In still other features, a system comprises sampling means for sampling radio frequency (RF) signals on a first channel for a first predetermined period and a second predetermined period that is subsequent to the first predetermined period. The system comprises counter means for incrementing first and second counts when the samples collected during the first and second predetermined periods reverse polarity, respectively. The system further comprises frequency characteristic means for determining a frequency of the RF signal based on at least one of the first and the second counts and determining frequency variation of the RF signal based on the first and second counts. At least one of the first and second counts is equal to the frequency.
In another feature, the frequency characteristic means compares the first and second counts to determine the frequency variation. The frequency characteristic means determines that the RF signal is tone radar when the first and second counts are approximately equal.
In another feature, the sampling means samples the RF signals for a third predetermined period that is subsequent to the second predetermined period and wherein the counter means increments a third count when the samples collected during the third predetermined period reverse polarity.
In another feature, the system further comprises derivative means for determining a first difference between the first and second counts and a second difference between the second and third counts. The derivative means determines a third difference between the first and second differences. The derivative means determines the first and second differences when the first, second, and third counts are greater than a predetermined threshold.
In another feature, the frequency characteristic means determines that the RF signal is chirp radar when the third difference is less than a predetermined threshold. The predetermined threshold is approximately zero.
In another feature, the frequency characteristic means determines that the RF signal is chirp radar when the third difference is approximately zero.
In another feature, the system further comprises radar means for determines whether the RF signal is one of chirp radar and tone radar based on the frequency variation. The radar means determines that the RF signal is chirp radar when the frequency variation is linear. The radar means determines that the RF signal is tone radar when the frequency variation is approximately zero.
In another feature, the system further comprises dynamic frequency selection (DFS) means for communicates with the radar means and selecting a second channel having a different frequency than the first channel when the radar means determines that the RF signal is one of chirp radar and tone radar.
In another feature, at least one of the samples is disregarded and excluded from the first and second counts when an absolute value of the at least one of the samples is less than a predetermined threshold.
In another feature, the predetermined threshold is approximately 0.1.
In another feature, the first and second periods are adjacent.
In another feature, the first, second, and third periods are adjacent.
In another feature, a wireless network device comprises the system.
In another feature, a radar detection device comprises the system.
In still other features, a computer program executed by a processor comprises sampling radio frequency (RF) signals on a first channel for a first predetermined period and a second predetermined period that is subsequent to the first predetermined period, incrementing first and second counts when the samples collected during the first and second predetermined periods reverse polarity, respectively, determining a frequency of the RF signal based on at least one of the first and the second counts, and determining frequency variation of the RF signal based on the first and second counts. At least one of the first and second counts is equal to the frequency.
In another feature, the computer program further comprises comparing the first and second counts to determine the frequency variation. The computer program further comprises determining that the RF signal is tone radar when the first and second counts are approximately equal.
In another feature, the computer program further comprises sampling the RF signals for a third predetermined period that is subsequent to the second predetermined period and incrementing a third count when the samples collected during the third predetermined period reverse polarity.
In another feature, the computer program further comprises determining a first difference between the first and second counts and a second difference between the second and third counts. The computer program further comprises determining a third difference between the first and second differences.
In another feature, the computer program further comprises determining the first and second differences when the first, second, and third counts are greater than a predetermined threshold.
In another feature, the computer program further comprises determining that the RF signal is chirp radar when the third difference is less than a predetermined threshold. The predetermined threshold is approximately zero.
In another feature, the computer program further comprises determining that the RF signal is chirp radar when the third difference is approximately zero.
In another feature, the computer program further comprises determining whether the RF signal is one of chirp radar and tone radar based on the frequency variation. The computer program further comprises determining that the RF signal is chirp radar when the frequency variation is linear. The computer program further comprises determining that the RF signal is tone radar when the frequency variation is approximately zero.
In another feature, the computer program further comprises selecting a second channel having a different frequency than the first channel when the RF signal is one of chirp radar and tone radar.
In another feature, the computer program further comprises disregarding and excluding at least one of the samples from the first and second counts when an absolute value of the at least one of the samples is less than a predetermined threshold.
In another feature, the predetermined threshold is approximately 0.1.
In another feature, the first and second periods are adjacent.
In another feature, the first, second, and third periods are adjacent.
In still other features, the systems and methods described above are implemented by a computer program executed by one or more processors. The computer program can reside on a computer readable medium such as but not limited to memory, non-volatile data storage and/or other suitable tangible storage mediums.
Further areas of applicability of the present disclosure will become apparent from the detailed description provided hereinafter. It should be understood that the detailed description and specific examples, while indicating the preferred embodiment of the disclosure, are intended for purposes of illustration only and are not intended to limit the scope of the disclosure.
The present disclosure will become more fully understood from the detailed description and the accompanying drawings, wherein:
The following description is merely exemplary in nature and is in no way intended to limit the disclosure, its application, or uses. For purposes of clarity, the same reference numbers will be used in the drawings to identify similar elements. As used herein, the term module, circuit and/or device refers to an Application Specific Integrated Circuit (ASIC), an electronic circuit, a processor (shared, dedicated, or group) and memory that execute one or more software or firmware programs, a combinational logic circuit, and/or other suitable components that provide the described functionality. As used herein, the phrase at least one of A, B, and C should be construed to mean a logical (A or B or C), using a non-exclusive logical or. It should be understood that steps within a method may be executed in different order without altering the principles of the present disclosure.
Dynamic frequency selection (DFS) is typically used to avoid interference between radar signals and wireless network communication systems operating in the 5 GHz band. More specifically, DFS is used to select a radar-free channel for wireless network communication from multiple non-overlapping channels in the 5.25-5.35 GHz and 5.47-5.725 GHz frequency ranges.
Referring now to
The AGC module 42 provides a radio signal strength indicator (RSSI) measurement to the radar module 44. Based on RSSI, the radar module 44 determines if a radio frequency (RF) signal is stronger than a predetermined threshold DFSth such as −64 dBm. The CCA module 46 distinguishes legitimate wireless data packets from other signals and activates the radar module 44 when the RF signal is not a legitimate wireless data packet. The radar module 44 measures parameters of the RF signal such as pulse width, frequency, frequency variation, etc. More specifically, the radar module 44 may include a frequency module 53 that measures frequency and frequency variation of an RF signal. The DFS module 52 may compare the parameters measured by the radar module 44 with a set of parameters of known types of radar signals. The system 40 may switch to a different channel if the RF signal is a radar signal of a known type.
The system 40 may be implemented in a wireless network device 54 such as an access point or a client station. The wireless network device 54 typically includes an RF transceiver module 56, a baseband processor (BBP) module 58, and a medium access controller (MAC) module (or a control module) 60.
The RF transceiver 56 receives RF signals. The BBP module 58 demodulates, digitizes, and filters the RF signal. The BBP module 58 may include the AGC module 42, the ADC module 48, and the filter module 50. The control module 60 may include the radar module 44, the CCA module 46, and the DFS module 52.
In some implementations, the radar module 44, the CCA module 46, and the DFS module 52 may be implemented in the BBP module 58 of the wireless network device 54. In still other implementations, at least one of the modules may be implemented by firmware and/or software. Although shown separately for illustrative purposes, at least one of the modules shown in
Additionally, the system 40 may be implemented in any other devices and/or systems that may be used to detect radar. Although the disclosure explains how the system 40 may be used to detect chirp radar, a skilled artisan may use the system 40 to detect and measure frequency variations in signals other than radar.
Radar signals may be generally classified into three categories: short-pulse radar signals, long-pulse or chirp radar signals, and frequency-hopping radar signals. A table in
Referring now to
When the RF transceiver 56 receives an RF signal, the gain of the AGC module 42 typically decreases to a value that is less than a normal value. The gain of the AGC module 42 may return to the normal value after a period of time. The time taken by the gain of the AGC module 42 to return to the normal value depends on various parameters of the RF signal such as signal strength, pulse width, frequency, etc. The AGC module 42 uses a radio signal strength indicator (RSSI) to communicate the strength of the RF signal to the radar module 44. If RSSI exceeds a threshold value DFSth such as −64 dBm, the radar module 44 may perform radar detection.
The CCA module 46 may determine whether the RF signal is a legitimate wireless data packet. A preamble in a legitimate wireless data packet includes a standard sequence. The CCA module 46 performs a correlation on the sequence in the preamble to determine whether the RF signal is a legitimate wireless data packet. The CCA module 46 uses a CCA signal to activate the radar module 44 when the RF signal is not a legitimate wireless data packet. Thus, the CCA module 46 may prevent false triggering of the radar module 44. More specifically, the CCA module 46 may prevent the radar module 44 from performing radar detection and DFS when the RF signal is a legitimate wireless data packet. In addition, the CCA module 46 may prevent the radar module 44 from being falsely triggered by Bluetooth jammers.
The ADC module 48 converts the RF signal from an analog to a digital format. When the RF signal is no longer being received, the output of the ADC decreases to a low value. The radar module 44 monitors the output of the ADC module 48. When the output of the ADC module 48 decreases below a predetermined threshold and remains below the predetermined threshold for a period of time, the radar module 44 detects an ADC under-run condition. The ADC under-run condition indicates an end of a pulse of the RF signal. The radar module 44 determines characteristics of the RF signal such as pulse width (PW), frequency, frequency variation, etc., based on the ADC under-run condition.
The filter module 50 typically includes a low-pass filter that filters the output of the ADC module 48. The radar module 44 determines whether the RF signal is single tone radar or chirp radar based on the output of the filter module 50. More specifically, the frequency module 53 determines the frequency and frequency variation of the RF signal. The frequency module 53 determines characteristics of the RF signal based on the frequency variation. The characteristics of the RF signal may be used to determine whether the RF signal is single tone radar or chirp radar.
The radar module 44 determines parameters of the RF signal such as pulse width, frequency, frequency characteristics (e.g., chirp frequency, single tone frequency, etc.), and pulse repetition interval (PRI). The DFS module 52 compares the parameters determined by the radar module 44 to the exemplary parameters shown in the table in
When the signal strength of the RF signal exceeds DFSth and when the CCA module 46 indicates that the RF signal is not a legitimate wireless data packet, the radar module 44 measures pulse width of every pulse of the RF. More specifically, the radar module 44 determines a beginning of a pulse based on the RSSI signal generated by the AGC module 42. The RSSI signal indicates a beginning of a pulse when the AGC gain crosses the −64 dBm threshold. An end of a pulse is indicated by the ADC under-run condition detected by the radar module 44 at the end of every pulse. The radar module 44 calculates the pulse width of the pulse by counting a difference between the time of the beginning of the pulse and the time of the end of the pulse.
Additionally, after receiving the ADC under-run signal at the end of the pulse, the radar module 44 generates a signal to reset the gain of the AGC module 42 to the normal value. Unless reset, the gain of the AGC module 42 may take longer to return to the normal value, and incoming data during that time period may be lost.
Referring now to
The frequency module 53 determines the frequency of the RF signal for each bin. More specifically, the frequency module 53 counts zero-crossings for each bin to determine the frequency. By counting the number of zero-crossings, the frequency module 53 may utilize less resources than more complex methods that use Fourier transforms (e.g., DFT, FFT).
Referring now to
Referring now to
The sampling module 100 may communicate with the ADC module 48, the ABS module 102, and the timer 108. The polarity comparator 104 may communicate with the ABS module 102, the counter 106, and memory 112. The counter 106 may communicate with the timer 108 and memory 112. The clock 110 may communicate with the timer 108.
The clock 110 may periodically set the timer 108 to count down from a predetermined time. The predetermined time may correspond with the period of the bin. While the timer 108 is counting down, the sampling module 100 may collect data samples from the ADC module 48. The ABS module 102 may receive the samples from the sampling module 100 and discard samples that have an absolute value less than the ABS threshold. The polarity comparator 104 compares the remaining samples to a previous sample stored in memory 112. If the polarity of the previous sample is opposite of the sample, a zero-crossing has occurred. When a zero-crossing occurs, the polarity comparator 104 directs the counter 106 to increment a count total and stores the sample in memory 112. The counter 106 stores the count total in memory 112 when the timer 108 expires. The count total sampled during the predetermined time generally corresponds to the frequency of the RF signal for each bin.
The frequency characteristic module 114 may communicate with memory 112 and determine frequency characteristics of the count totals (or frequencies) stored in memory 112. More specifically, the frequency characteristic module 114 compares the frequencies of each bin and determines whether the frequencies vary according to a predetermined pattern. For example, if the frequencies vary according to a linear pattern, the RF signal may be chirp radar. If the frequencies are substantially the same from bin to bin, the RF signal may be tone radar.
Referring now to
The tone module 150 may include a tone comparator 154. The tone comparator 154 may compare the frequencies of each bin stored in memory 112. If the frequencies are substantially the same, the tone module 150 may determine the RF signal to be tone. To determine whether the frequencies are substantially the same, the tone comparator 154 may also compare the variation of each bin to a tone threshold.
The chirp module 152 determines whether the frequency of the RF signal varies linearly, in which case the RF signal may be chirp radar.
Referring back to
The derivative module 160 may approximate a first and second derivative of the frequencies of each bin stored in memory 112. The second derivative may be used to determine whether the frequency variation is linear. More specifically, if the second derivative is approximately zero, the frequency variation is linear. If the frequency variation is linear, the chirp module 152 may determine that the RF signal is chirp radar due to the linear characteristics of chirp radar.
To determine the first and second derivatives of the frequencies, the derivative module 160 may use difference equations. The first derivative may be determined with the following equation:
di=|zi−zi+1|
where di is the first derivative, zi is the frequency in a current bin, and zi+1 is the frequency in the next bin. The second derivative may be determined with the following equation:
s=|di−di+1|
where s is the second derivative, di is the first derivative of the frequency in a current bin, and di+1 is the first derivative of the frequency in the next bin.
The chirp comparator 158 determines whether the second derivative is approximately zero. More specifically, the chirp comparator 158 may compare the second derivative of the frequencies to a chirp threshold that is slightly greater than zero. If the second derivative is less than the chirp threshold, then the second derivative is approximately zero. If the second derivative is approximately zero, the chirp module 150 may determine RF signal to be chirp radar.
Referring now to
In step 208, the ABS module 102 determines an absolute value of the samples. The ABS module 102 determines whether the absolute value of the sample is greater than the ABS threshold in step 210. If the absolute value of the sample is greater than the ABS threshold, the polarity comparator 104 determines whether the polarity of the sample has transitioned in step 212. If the polarity of the sample has transitioned, the counter 106 increments in step 214. In step 216, the frequency module 53 determines whether the timer 108 has expired. If the timer 108 has expired, the value that the counter 106 has incremented to is stored in memory 112 in step 218 and the process ends in step 220. If the timer 108 has not expired, the process returns to step 206.
If the ABS module 102 determines that the absolute value of the sample is not greater than the ABS threshold in step 210, the ABS module 102 discards the sample in step 222. The frequency module 53 determines whether the timer 108 has expired in step 216. If the timer 108 has expired, the value that the counter 106 has incremented to is stored in memory 112 in step 218 and the process ends in step 220. If the timer 108 has not expired, the process returns to step 206.
If the polarity comparator 104 determines that the polarity of the sample has not transitioned in step 212, the frequency module 53 determines whether the timer 108 has expired in step 216. If the timer 108 has expired, the value that the counter 106 has incremented to is stored in memory 112 in step 218 and the process ends in step 220. If the timer 108 has not expired, the process returns to step 206.
Referring now to
If the tone comparator 154 determines that the frequencies are not substantially the same from bin to bin in step 254, the frequency comparator 156 determines whether the frequency is greater than a frequency threshold in step 260. If the frequency is not greater than the frequency threshold, the frequency characteristic module 114 determines whether there are more bins in memory 112 in step 262. If there are more bins in memory 112, the frequency module 114 reads the frequency of the next bin stored in memory 112 in step 253.
If the frequency comparator 156 determines that the frequency is greater than the frequency threshold, the derivative module 160 determines the first derivative in step 264 and the second derivative in step 266. In step 268, the chirp comparator 158 determines whether the second derivative is less than the chirp threshold. If the second derivative is less than the chirp threshold, the chirp module 152 determines that the RF signal is chirp radar in step 270 and the process ends in step 258. If the second derivative is not less than the chirp threshold, the process ends in step 258.
Referring now to
The HDTV 420 may communicate with mass data storage 427 that stores data in a nonvolatile manner in devices such as optical and/or magnetic storage devices. The devices may include, for example, hard disk drives HDD and/or DVDs. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8″. The HDTV 420 may be connected to memory 428 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. The HDTV 420 also may support connections with a WLAN via a WLAN network interface 429.
Referring now to
The cellular phone 450 may communicate with mass data storage 464 that stores data in a nonvolatile manner in devices such as optical and/or magnetic storage devices. The devices may include, for example, hard disk drives HDD and/or DVDs. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8″. The cellular phone 450 may be connected to memory 466 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. The cellular phone 450 also may support connections with a WLAN via a WLAN network interface 468.
Referring now to
The set top box 480 may communicate with mass data storage 490 that stores data in a nonvolatile manner. The mass data storage 490 may include optical and/or magnetic storage devices such as hard disk drives HDD and/or DVDs. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8″. The set top box 480 may be connected to memory 494 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. The set top box 480 also may support connections with a WLAN via a WLAN network interface 496.
Referring now to
The media player 500 may communicate with mass data storage 510 that stores data such as compressed audio and/or video content in a nonvolatile manner. In some implementations, the compressed audio files include files that are compliant with MP3 format or other suitable compressed audio and/or video formats. The mass data storage may include optical and/or magnetic storage devices such as hard disk drives HDD and/or DVDs. The HDD may be a mini HDD that includes one or more platters having a diameter that is smaller than approximately 1.8″. The media player 500 may be connected to memory 514 such as RAM, ROM, low latency nonvolatile memory such as flash memory and/or other suitable electronic data storage. The media player 500 also may support connections with a WLAN via a WLAN network interface 516. Still other implementations in addition to those described above are contemplated.
Those skilled in the art can now appreciate from the foregoing description that the broad teachings of the disclosure can be implemented in a variety of forms. Therefore, while this disclosure includes particular examples, the true scope of the disclosure should not be so limited since other modifications will become apparent to the skilled practitioner upon a study of the drawings, the specification and the following claims.
Lou, Hui-Ling, Wu, Songping, Nallapureddy, Bhaskar V., Yu, Tsunglun
Patent | Priority | Assignee | Title |
11268438, | Sep 15 2017 | General Electric Company | Combustor liner dilution opening |
8879996, | Dec 30 2011 | Intel Corporation | Method to enable Wi-Fi direct usage in radar bands |
8947071, | Mar 03 2011 | Weston Aerospace Limited | Noise reduction system and method |
9131504, | Dec 30 2011 | Intel Corporation | Method to enable Wi-Fi direct usage in radar bands |
Patent | Priority | Assignee | Title |
4593287, | Sep 30 1982 | The Boeing Company | FM/CW sweep linearizer and method therefor |
5705750, | Mar 15 1995 | SANYO ELECTRIC CO , LTD | Ultrasonic sensor and pipetting apparatus using same |
5748670, | May 25 1995 | IXYS Intl Limited | Method of demodulating chirp spread spectrum |
7046964, | May 21 2001 | Counter Technologies, LLC | Method and apparatus for determining the frequency of a radio signal during periods of stability and monitoring communications with a radio receiver |
20030107512, | |||
EP284498, | |||
EP1793241, |
Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Jul 24 2006 | NALLAPUREDDY, BHASKAR V | MARVELL SEMICONDUCTOR, INC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 018100 | /0875 | |
Jul 24 2006 | WU, SONGPING | MARVELL SEMICONDUCTOR, INC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 018100 | /0875 | |
Jul 24 2006 | YU, TSUNGLUN | MARVELL SEMICONDUCTOR, INC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 018100 | /0875 | |
Jul 24 2006 | LOU, HUI-LING | MARVELL SEMICONDUCTOR, INC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 018100 | /0875 | |
Jul 25 2006 | MARVELL SEMICONDUCTOR, INC | MARVELL INTERNATIONAL LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 018100 | /0879 | |
Jul 26 2006 | Marvell World Trade Ltd. | (assignment on the face of the patent) | / | |||
Aug 21 2006 | Marvell International, Ltd | Marvell World Trade Ltd | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 018250 | /0456 | |
Sep 26 2019 | Marvell World Trade Ltd | MARVELL INTERNATIONAL LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 050516 | /0500 | |
Dec 06 2019 | MARVELL INTERNATIONAL LTD | NXP USA, INC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 051536 | /0001 |
Date | Maintenance Fee Events |
Dec 30 2013 | M1551: Payment of Maintenance Fee, 4th Year, Large Entity. |
Dec 29 2017 | M1552: Payment of Maintenance Fee, 8th Year, Large Entity. |
Sep 23 2021 | M1553: Payment of Maintenance Fee, 12th Year, Large Entity. |
Date | Maintenance Schedule |
Jun 29 2013 | 4 years fee payment window open |
Dec 29 2013 | 6 months grace period start (w surcharge) |
Jun 29 2014 | patent expiry (for year 4) |
Jun 29 2016 | 2 years to revive unintentionally abandoned end. (for year 4) |
Jun 29 2017 | 8 years fee payment window open |
Dec 29 2017 | 6 months grace period start (w surcharge) |
Jun 29 2018 | patent expiry (for year 8) |
Jun 29 2020 | 2 years to revive unintentionally abandoned end. (for year 8) |
Jun 29 2021 | 12 years fee payment window open |
Dec 29 2021 | 6 months grace period start (w surcharge) |
Jun 29 2022 | patent expiry (for year 12) |
Jun 29 2024 | 2 years to revive unintentionally abandoned end. (for year 12) |